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Published on: December 8, 2017
Pathological Neuroinflammatory Conversion of Reactive Astrocytes Is Induced by Microglia and Involves Chromatin
Alejandro Villarreal1, Camila Vidos1, Matías Monteverde Busso1,2
1Laboratorio de Neuropatología Molecular, Instituto de Biología Celular y Neurociencia "Prof. E. De Robertis" UBA-CONICET, Facultad de Medicina, Universidad de Buenos Aires, Buenos Aires, Argentina.
Abstract:
Following brain injury or in neurodegenerative diseases, astrocytes become reactive and may suffer pathological remodeling, features of which are the loss of their homeostatic functions and a pro-inflammatory gain of function that facilitates neurodegeneration. Pharmacological intervention to modulate this astroglial response and neuroinflammation is an interesting new therapeutic research strategy, but it still requires a deeper understanding of the underlying cellular and molecular mechanisms of the phenomenon. Based on the known microglial-astroglial interaction, the prominent role of the nuclear factor kappa B (NF-κB) pathway in mediating astroglial pathological pro-inflammatory gain of function, and its ability to recruit chromatin-remodeling enzymes, we first explored the microglial role in the initiation of astroglial pro-inflammatory conversion and then monitored the progression of epigenetic changes in the astrocytic chromatin. Different configurations of primary glial culture were used to modulate microglia-astrocyte crosstalk while inducing pro-inflammatory gain of function by lipopolysaccharide (LPS) exposure. In vivo, brain ischemia by cortical devascularization (pial disruption) was performed to verify the presence of epigenetic marks in reactive astrocytes. Our results showed that 1) microglia is required to initiate the pathological conversion of astrocytes by triggering the NF-κB signaling pathway; 2) this interaction is mediated by soluble factors and induces stable astroglial phenotypic changes; 3) the pathological conversion promotes chromatin remodeling with stable increase in H3K9K14ac, temporary increase in H3K27ac, and temporary reduction in heterochromatin mark H3K9me3; and 4) in vivo reactive astrocytes show increased H3K27ac mark in the neuroinflammatory milieu from the ischemic penumbra. Our findings indicate that astroglial pathological pro-inflammatory gain of function is associated with profound changes in the configuration of astrocytic chromatin, which in turn are initiated by microglia-derived cues. These results open a new avenue in the study of potential pharmacological interventions that modify the initiation and stabilization of astroglial pathological remodeling, which would be useful in acute and chronic CNS injury. Epigenetic changes represent a plausible pharmacological target to interfere with the stabilization of the pathological astroglial phenotype.
Insights
Microglia initiate astrocyte pro-inflammatory changes via NF-κB signaling, leading to stable epigenetic modifications. Targeting these epigenetic changes offers a new therapeutic strategy for central nervous system injuries.
Area of Science:
- Neuroscience
- Cellular Biology
- Neuroimmunology
Background:
- Astrocytes undergo pathological remodeling in brain injury and neurodegenerative diseases, losing function and becoming pro-inflammatory.
- Understanding the mechanisms of astroglial pro-inflammatory gain of function is crucial for developing therapeutic strategies targeting neuroinflammation.
Purpose of the Study:
- To investigate the role of microglia in initiating astrocyte pro-inflammatory conversion.
- To identify epigenetic changes in astrocytic chromatin during pathological remodeling.
- To explore potential pharmacological targets for modulating astroglial responses in CNS injury.
Main Methods:
- Primary glial cultures were used to study microglia-astrocyte crosstalk under lipopolysaccharide (LPS) stimulation.
- In vivo models of brain ischemia (cortical devascularization) were employed to observe reactive astrocytes.
- Chromatin immunoprecipitation (ChIP) assays were performed to analyze histone modifications.
Main Results:
- Microglia are essential for initiating astrocyte pro-inflammatory conversion through the NF-κB pathway.
- Microglia-derived soluble factors induce stable phenotypic changes in astrocytes.
- Pathological astrocyte conversion involves chromatin remodeling, including increased H3K9K14ac and H3K27ac, and decreased H3K9me3.
- In vivo, reactive astrocytes in the ischemic penumbra exhibit increased H3K27ac.
Conclusions:
- Astroglial pathological remodeling and pro-inflammatory gain of function are initiated by microglia-derived signals.
- Epigenetic modifications in astrocytic chromatin accompany and stabilize these pathological changes.
- Epigenetic alterations present a promising therapeutic target for CNS injury and neurodegenerative diseases.

